原位co2吸附强化制氢研究进展

IF 32 1区 工程技术 Q1 ENERGY & FUELS Progress in Energy and Combustion Science Pub Date : 2022-07-01 DOI:10.1016/j.pecs.2022.101008
Vineet Singh Sikarwar , Christoph Pfeifer , Frederik Ronsse , Michael Pohořelý , Erik Meers , Ajay Kumar Kaviti , Michal Jeremiáš
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引用次数: 18

摘要

使用化石燃料来满足世界不断增长的人口的能源需求,导致温室气体(GHG)排放水平上升,尤其是二氧化碳,这反过来又导致了不受欢迎的气候变化。这就需要转向氢等清洁能源。通过各种燃料(甲烷、生物质、有机废物等)的蒸汽重整和原位二氧化碳吸附来增强制氢似乎是一个很有前途的替代方案。该技术的发展和增长需要前沿、创新和环保的途径,以及高流程效率。本文综述了二氧化碳吸收标准、机理、热力学和动力学等基本概念,以及不同的吸附强化过程建模方法。此外,还讨论了在世界范围内进行的实验室规模的研究工作,以及工艺开发和示范装置,作为鼓励这一途径产生氢气的手段。此外,还阐明了技术经济学作为提高所提议技术的可行性和可持续性的一种方法。本文分析了二氧化碳吸收增强过程的不同维度,以促进它作为一种潜在的碳中和和生态友好的制氢途径。
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Progress in in-situ CO2-sorption for enhanced hydrogen production

Deployment of fossil fuels to quench the energy demand of the world's rising population results in elevated levels of greenhouse gas (GHG) emissions, especially CO2, which in turn is responsible for undesirable climate change. This necessitates a shift toward cleaner energy resources such as hydrogen. Enhanced hydrogen production via steam reforming of diverse fuels (methane, biomass, organic wastes, etc.) with in-situ CO2-sorption seems to be a promising alternative. Leading-edge, innovative and eco-friendly pathways coupled with high process efficiencies are needed for the development and growth of this technology. This review article evaluates the fundamental concepts such as criteria for CO2 uptake, mechanisms, thermodynamics and kinetics of the water gas shift reaction along with different modeling methods for sorption enhanced processes. Moreover, research works carried out worldwide at lab-scale coupled with process development and demonstration units are discussed as a means to encourage this pathway for H2 generation. Furthermore, light is shed on techno-economics as an approach to improve the viability and sustainability of the proposed technology. This paper analyzes different dimensions of the CO2-sorption enhanced process to promote it as a potentially carbon-neutral and eco-friendly pathway for hydrogen production.

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来源期刊
Progress in Energy and Combustion Science
Progress in Energy and Combustion Science 工程技术-工程:化工
CiteScore
59.30
自引率
0.70%
发文量
44
审稿时长
3 months
期刊介绍: Progress in Energy and Combustion Science (PECS) publishes review articles covering all aspects of energy and combustion science. These articles offer a comprehensive, in-depth overview, evaluation, and discussion of specific topics. Given the importance of climate change and energy conservation, efficient combustion of fossil fuels and the development of sustainable energy systems are emphasized. Environmental protection requires limiting pollutants, including greenhouse gases, emitted from combustion and other energy-intensive systems. Additionally, combustion plays a vital role in process technology and materials science. PECS features articles authored by internationally recognized experts in combustion, flames, fuel science and technology, and sustainable energy solutions. Each volume includes specially commissioned review articles providing orderly and concise surveys and scientific discussions on various aspects of combustion and energy. While not overly lengthy, these articles allow authors to thoroughly and comprehensively explore their subjects. They serve as valuable resources for researchers seeking knowledge beyond their own fields and for students and engineers in government and industrial research seeking comprehensive reviews and practical solutions.
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